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264 lines
9.5 KiB
Rust
264 lines
9.5 KiB
Rust
use ore_api::prelude::*;
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use steel::*;
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/// Reset tops up the bus balances, updates the base reward rate, and sets up the ORE program for the next epoch.
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pub fn process_reset(accounts: &[AccountInfo<'_>], _data: &[u8]) -> ProgramResult {
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// Load accounts.
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let [signer_info, bus_0_info, bus_1_info, bus_2_info, bus_3_info, bus_4_info, bus_5_info, bus_6_info, bus_7_info, config_info, mint_info, treasury_info, treasury_tokens_info, token_program] =
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accounts
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else {
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return Err(ProgramError::NotEnoughAccountKeys);
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};
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signer_info.is_signer()?;
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let bus_0 = bus_0_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 0)?;
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let bus_1 = bus_1_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 1)?;
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let bus_2 = bus_2_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 2)?;
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let bus_3 = bus_3_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 3)?;
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let bus_4 = bus_4_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 4)?;
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let bus_5 = bus_5_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 5)?;
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let bus_6 = bus_6_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 6)?;
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let bus_7 = bus_7_info
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.to_account_mut::<Bus>(&ore_api::ID)?
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.check_mut(|b| b.id == 7)?;
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let config = config_info
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.is_config()?
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.to_account_mut::<Config>(&ore_api::ID)?;
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let mint = mint_info
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.has_address(&MINT_ADDRESS)?
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.is_writable()?
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.to_mint()?;
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treasury_info.is_treasury()?.is_writable()?;
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treasury_tokens_info.is_treasury_tokens()?.is_writable()?;
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token_program.is_program(&spl_token::ID)?;
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// Validate enough time has passed since the last reset.
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let clock = Clock::get()?;
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if config
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.last_reset_at
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.saturating_add(EPOCH_DURATION)
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.gt(&clock.unix_timestamp)
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{
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return Ok(());
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}
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// Update timestamp.
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config.last_reset_at = clock.unix_timestamp;
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// Reset bus accounts and calculate actual rewards mined since last reset.
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let busses = [bus_0, bus_1, bus_2, bus_3, bus_4, bus_5, bus_6, bus_7];
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let mut total_remaining_rewards = 0u64;
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let mut total_theoretical_rewards = 0u64;
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let mut top_balance = 0u64;
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for bus in busses {
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// Track top balance.
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if bus.top_balance.gt(&top_balance) {
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top_balance = bus.top_balance;
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}
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// Track accumulators.
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total_remaining_rewards = total_remaining_rewards.saturating_add(bus.rewards);
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total_theoretical_rewards =
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total_theoretical_rewards.saturating_add(bus.theoretical_rewards);
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// Reset bus account for new epoch.
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bus.rewards = BUS_EPOCH_REWARDS;
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bus.theoretical_rewards = 0;
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bus.top_balance = 0;
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}
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let total_epoch_rewards = MAX_EPOCH_REWARDS.saturating_sub(total_remaining_rewards);
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// Update global top balance.
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config.top_balance = top_balance;
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// Update base reward rate for next epoch.
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config.base_reward_rate =
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calculate_new_reward_rate(config.base_reward_rate, total_theoretical_rewards);
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// If base reward rate is too low, increment min difficulty by 1 and double base reward rate.
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if config.base_reward_rate.le(&BASE_REWARD_RATE_MIN_THRESHOLD) {
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config.min_difficulty = config.min_difficulty.checked_add(1).unwrap();
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config.base_reward_rate = config.base_reward_rate.checked_mul(2).unwrap();
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}
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// If base reward rate is too high, decrement min difficulty by 1 and halve base reward rate.
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if config.base_reward_rate.ge(&BASE_REWARD_RATE_MAX_THRESHOLD) && config.min_difficulty.gt(&1) {
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config.min_difficulty = config.min_difficulty.checked_sub(1).unwrap();
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config.base_reward_rate = config.base_reward_rate.checked_div(2).unwrap();
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}
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// Max supply check.
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if mint.supply.ge(&MAX_SUPPLY) {
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return Err(OreError::MaxSupply.into());
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}
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// Fund the treasury token account.
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let amount = MAX_SUPPLY
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.saturating_sub(mint.supply)
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.min(total_epoch_rewards);
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solana_program::program::invoke_signed(
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&spl_token::instruction::mint_to(
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&spl_token::id(),
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mint_info.key,
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treasury_tokens_info.key,
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treasury_info.key,
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&[treasury_info.key],
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amount,
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)?,
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&[
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token_program.clone(),
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mint_info.clone(),
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treasury_tokens_info.clone(),
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treasury_info.clone(),
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],
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&[&[TREASURY, &[TREASURY_BUMP]]],
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)?;
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Ok(())
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}
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/// This function calculates what the new reward rate should be based on how many total rewards
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/// were mined in the prior epoch. The math is largely identitical to function used by the Bitcoin
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/// network to update the difficulty between each epoch.
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///
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/// new_rate = current_rate * (target_rewards / actual_rewards)
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///
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/// The new rate is then smoothed by a constant factor to avoid large fluctuations. In Ore's case,
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/// the epochs are short (60 seconds) so a smoothing factor of 2 has been chosen. That is, the reward rate
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/// can at most double or halve from one epoch to the next.
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pub(crate) fn calculate_new_reward_rate(current_rate: u64, epoch_rewards: u64) -> u64 {
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// Avoid division by zero. Leave the reward rate unchanged, if detected.
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if epoch_rewards.eq(&0) {
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return current_rate;
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}
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// Calculate new reward rate.
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let new_rate = (current_rate as u128)
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.saturating_mul(TARGET_EPOCH_REWARDS as u128)
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.saturating_div(epoch_rewards as u128) as u64;
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// Smooth reward rate so it cannot change by more than a constant factor from one epoch to the next.
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let new_rate_min = current_rate.saturating_div(SMOOTHING_FACTOR);
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let new_rate_max = current_rate.saturating_mul(SMOOTHING_FACTOR);
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let new_rate_smoothed = new_rate.min(new_rate_max).max(new_rate_min);
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// Prevent reward rate from dropping below 1 or exceeding BUS_EPOCH_REWARDS and return.
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new_rate_smoothed.max(1).min(BUS_EPOCH_REWARDS)
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}
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#[cfg(test)]
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mod tests {
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use rand::{distributions::Uniform, Rng};
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use crate::calculate_new_reward_rate;
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use ore_api::consts::{
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BASE_REWARD_RATE_MIN_THRESHOLD, BUS_EPOCH_REWARDS, MAX_EPOCH_REWARDS, SMOOTHING_FACTOR,
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TARGET_EPOCH_REWARDS,
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};
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const FUZZ_SIZE: u64 = 10_000;
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#[test]
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fn test_calculate_new_reward_rate_target() {
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let current_rate = 1000;
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let new_rate = calculate_new_reward_rate(current_rate, TARGET_EPOCH_REWARDS);
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assert!(new_rate.eq(¤t_rate));
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}
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#[test]
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fn test_calculate_new_reward_rate_div_by_zero() {
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let current_rate = 1000;
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let new_rate = calculate_new_reward_rate(current_rate, 0);
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assert!(new_rate.eq(¤t_rate));
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}
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#[test]
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fn test_calculate_new_reward_rate_lower() {
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let current_rate = 1000;
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let new_rate = calculate_new_reward_rate(
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current_rate,
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TARGET_EPOCH_REWARDS.saturating_add(1_000_000_000),
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);
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assert!(new_rate.lt(¤t_rate));
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}
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#[test]
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fn test_calculate_new_reward_rate_lower_edge() {
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let current_rate = BASE_REWARD_RATE_MIN_THRESHOLD;
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let new_rate = calculate_new_reward_rate(current_rate, TARGET_EPOCH_REWARDS + 1);
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assert!(new_rate.lt(¤t_rate));
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}
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#[test]
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fn test_calculate_new_reward_rate_lower_fuzz() {
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let mut rng = rand::thread_rng();
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for _ in 0..FUZZ_SIZE {
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let current_rate: u64 = rng.sample(Uniform::new(1, BUS_EPOCH_REWARDS));
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let actual_rewards: u64 =
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rng.sample(Uniform::new(TARGET_EPOCH_REWARDS, MAX_EPOCH_REWARDS));
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let new_rate = calculate_new_reward_rate(current_rate, actual_rewards);
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assert!(new_rate.lt(¤t_rate));
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}
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}
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#[test]
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fn test_calculate_new_reward_rate_higher() {
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let current_rate = 1000;
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let new_rate = calculate_new_reward_rate(
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current_rate,
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TARGET_EPOCH_REWARDS.saturating_sub(1_000_000_000),
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);
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assert!(new_rate.gt(¤t_rate));
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}
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#[test]
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fn test_calculate_new_reward_rate_higher_fuzz() {
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let mut rng = rand::thread_rng();
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for _ in 0..FUZZ_SIZE {
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let current_rate: u64 = rng.sample(Uniform::new(1, BUS_EPOCH_REWARDS));
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let actual_rewards: u64 = rng.sample(Uniform::new(1, TARGET_EPOCH_REWARDS));
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let new_rate = calculate_new_reward_rate(current_rate, actual_rewards);
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assert!(new_rate.gt(¤t_rate));
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}
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}
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#[test]
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fn test_calculate_new_reward_rate_max_smooth() {
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let current_rate = 1000;
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let new_rate = calculate_new_reward_rate(current_rate, 1);
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assert!(new_rate.eq(¤t_rate.saturating_mul(SMOOTHING_FACTOR)));
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}
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#[test]
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fn test_calculate_new_reward_rate_min_smooth() {
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let current_rate = 1000;
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let new_rate = calculate_new_reward_rate(current_rate, u64::MAX);
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assert!(new_rate.eq(¤t_rate.saturating_div(SMOOTHING_FACTOR)));
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}
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#[test]
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fn test_calculate_new_reward_rate_max_inputs() {
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let new_rate = calculate_new_reward_rate(BUS_EPOCH_REWARDS, MAX_EPOCH_REWARDS);
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assert!(new_rate.eq(&BUS_EPOCH_REWARDS.saturating_div(SMOOTHING_FACTOR)));
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}
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#[test]
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fn test_calculate_new_reward_rate_min_inputs() {
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let new_rate = calculate_new_reward_rate(1, 1);
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assert!(new_rate.eq(&1u64.saturating_mul(SMOOTHING_FACTOR)));
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}
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}
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